Sandbox Reserved 1125: Difference between revisions

From Proteopedia
Jump to navigationJump to search
No edit summary
No edit summary
Line 25: Line 25:
[http://media.axon.es/pdf/90977_2.pdf] pockets
[http://media.axon.es/pdf/90977_2.pdf] pockets
[http://www.enzim.hu/~lbarna/articles/17275314.pdf]
[http://www.enzim.hu/~lbarna/articles/17275314.pdf]


== Structure and domains ==
== Structure and domains ==
Line 56: Line 57:


Unfortunately, no structure of the full MMP8 protein have been crystallized yet, but <scene name='71/719866/Human_prommp-1_structure/1'>here</scene> you can see in orange the hemopexin domain of human pro-MMP1 which is very well conserved between these two proteins, by the way you can find in this article: [http://www.fasebj.org/content/12/12/1075.full#ref-27 Matrix metalloproteinases: structures, evolution, and diversification,Irina Massova, Lakshmi P. Kotra, Rafael Fridman and Shahriar Mobashery], good pieces of information on conservations among the MMPs family.
Unfortunately, no structure of the full MMP8 protein have been crystallized yet, but <scene name='71/719866/Human_prommp-1_structure/1'>here</scene> you can see in orange the hemopexin domain of human pro-MMP1 which is very well conserved between these two proteins, by the way you can find in this article: [http://www.fasebj.org/content/12/12/1075.full#ref-27 Matrix metalloproteinases: structures, evolution, and diversification,Irina Massova, Lakshmi P. Kotra, Rafael Fridman and Shahriar Mobashery], good pieces of information on conservations among the MMPs family.




Line 65: Line 64:
To express collagenolytic activity, MMP-8 needs to have both the catalytic and hemopexin domains. The linker peptide can position the hemopexin domain in such a way that it bends over the active site of the catalytic domain. But understanding how the Hemopexin domain assists in the cleavage of collagen is elusive.<ref>PMID:15257288</ref> Thus, the collagen would be captured between these two domains. However, the active site cannot accommodate the entire triple helix in a native state. The linker peptide would, by means of its collagen-like conformation, change the quaternary structure of the captured collagen. Interactions between proline residues of the collagenase and a specific region of the collagen would generate a “proline zipper,” resulting in destabilization of the cleavage site area of the collagen. After destabilization, one chain of the triple helix fits in the specificity pocket or <scene name='71/719866/S1prime_pocket/1'>S1' pocket</scene> to the right of the active-site zinc. At first, the Gly residue of the substrate binds the <scene name='71/719866/Catalytic_site/4'>active site</scene> thanks to the Zn2+ atom. When it binds it takes the place of unstable water molecules and establishes stabilizing interactions with the active site thanks to its C terminal part.<ref>PMID:17185359</ref> The carboxyl group of the glutamate serves as a general base to draw a proton from the displaced water molecule, thereby facilitating the nucleophilic attack of the water molecule on the carbonyl carbon of the peptide scissile bond. Then, the Alanine residue of the enzyme makes a hydrogen bond with the NH group of the substrate. Moreover, this NH group becomes the new N-terminus after cleavage.<ref name="inhibitor">PMID:12730128</ref>
To express collagenolytic activity, MMP-8 needs to have both the catalytic and hemopexin domains. The linker peptide can position the hemopexin domain in such a way that it bends over the active site of the catalytic domain. But understanding how the Hemopexin domain assists in the cleavage of collagen is elusive.<ref>PMID:15257288</ref> Thus, the collagen would be captured between these two domains. However, the active site cannot accommodate the entire triple helix in a native state. The linker peptide would, by means of its collagen-like conformation, change the quaternary structure of the captured collagen. Interactions between proline residues of the collagenase and a specific region of the collagen would generate a “proline zipper,” resulting in destabilization of the cleavage site area of the collagen. After destabilization, one chain of the triple helix fits in the specificity pocket or <scene name='71/719866/S1prime_pocket/1'>S1' pocket</scene> to the right of the active-site zinc. At first, the Gly residue of the substrate binds the <scene name='71/719866/Catalytic_site/4'>active site</scene> thanks to the Zn2+ atom. When it binds it takes the place of unstable water molecules and establishes stabilizing interactions with the active site thanks to its C terminal part.<ref>PMID:17185359</ref> The carboxyl group of the glutamate serves as a general base to draw a proton from the displaced water molecule, thereby facilitating the nucleophilic attack of the water molecule on the carbonyl carbon of the peptide scissile bond. Then, the Alanine residue of the enzyme makes a hydrogen bond with the NH group of the substrate. Moreover, this NH group becomes the new N-terminus after cleavage.<ref name="inhibitor">PMID:12730128</ref>
The cleavage is at Gly775–Ile776 or Leu776 in each alpha-chain of the collagen molecule<ref name="hinge"/> and takes place at neutral pH. It generates fragments that spontaneously lose their helical conformation, denature to gelatin, and become soluble. The gelatin is then susceptible to attack by gelatinases and other proteases.<ref>[http://www.ebi.ac.uk/interpro/entry/IPR028709 "Neutrophil collagenase"]</ref>
The cleavage is at Gly775–Ile776 or Leu776 in each alpha-chain of the collagen molecule<ref name="hinge"/> and takes place at neutral pH. It generates fragments that spontaneously lose their helical conformation, denature to gelatin, and become soluble. The gelatin is then susceptible to attack by gelatinases and other proteases.<ref>[http://www.ebi.ac.uk/interpro/entry/IPR028709 "Neutrophil collagenase"]</ref>


== Inhibitors of MMP-8 ==
== Inhibitors of MMP-8 ==


=== Endogenous inhibitors ===
=== Endogenous inhibitors ===
The tissue inhibitors of metalloproteinases (TIMPs) are specific inhibitors of the whole family of MMPs proteins. Currently, four TIMPs were identified (TIMP-1, TIMP-2, TIMP-3, TIMP-4).
The tissue inhibitors of metalloproteinases (TIMPs) are specific inhibitors of the whole family of MMPs proteins. Currently, four TIMPs were identified (TIMP-1, TIMP-2, TIMP-3, TIMP-4).
They are 21 to 29kDa proteins, contain 2 subdomains (N-ter and C-ter) and have a "wedge-like" shape.  
They are 21 to 29kDa proteins, contain 2 subdomains (N-ter and C-ter) and have a "wedge-like" shape.  
Line 78: Line 77:


=== Synthetic inhibitors ===
=== Synthetic inhibitors ===
Because endogenous TIMPs have a broad spectrum of action over MMPs, researches were conducted to produce engineered TIMPs and modify their affinity for MMPs. For instance, mutation of the Thr2 of TIMP-1 modify the specificity of this inhibitor as this residue interacts with the S1' pocket of the MMPs.<ref>PMID:20080133</ref>
Because endogenous TIMPs have a broad spectrum of action over MMPs, researches were conducted to produce engineered TIMPs and modify their affinity for MMPs. For instance, mutation of the Thr2 of TIMP-1 modify the specificity of this inhibitor as this residue interacts with the S1' pocket of the MMPs.<ref>PMID:20080133</ref>


Line 85: Line 83:


Recently, new range of inhibitors which do not chelate the catalytic zinc were developped. Those compounds target the selectivity regions for substrates of the MMPs rather than binding to the catalytic zinc. For instance, they can interact with the S1' pocket and induce a conformational change like <scene name='71/719866/Non-chelating_inhibitor/2'>new inhibitors</scene> of MMP-8.<ref>[http://www.rcsb.org/pdb/explore/explore.do?structureId=3DPE 'Crystal structure of the complex between MMP-8 and a non-zinc chelating inhibitor']</ref>
Recently, new range of inhibitors which do not chelate the catalytic zinc were developped. Those compounds target the selectivity regions for substrates of the MMPs rather than binding to the catalytic zinc. For instance, they can interact with the S1' pocket and induce a conformational change like <scene name='71/719866/Non-chelating_inhibitor/2'>new inhibitors</scene> of MMP-8.<ref>[http://www.rcsb.org/pdb/explore/explore.do?structureId=3DPE 'Crystal structure of the complex between MMP-8 and a non-zinc chelating inhibitor']</ref>


== Function ==
== Function ==
A major function of MMPs is thought to be the removal of ECM in tissue resorption. Because of their recognized role in disease (see below) the MMPs have long been considered as pharmacological targets, but their multiplicity, associated with their variable expression in different tissues and their apparently overlapping substrate specificities, has presented considerable challenges to those hoping to design suitable therapeutic inhibitors.
A major function of MMPs is thought to be the removal of ECM in tissue resorption. Because of their recognized role in disease (see below) the MMPs have long been considered as pharmacological targets, but their multiplicity, associated with their variable expression in different tissues and their apparently overlapping substrate specificities, has presented considerable challenges to those hoping to design suitable therapeutic inhibitors.


== Disease ==
== Disease ==
Line 112: Line 112:
== References ==
== References ==
<references />
<references />
RESSOURCE : Image:2oy4 mm1.pdb ( la structure du monomère )

Revision as of 15:20, 30 January 2016

Matrix metalloproteinase-8

MMP-8, also called, Neutrophil collagenase or Collagenase 2, is a zinc-dependent and calcium-dependent enzyme. It belongs to the Matrix metalloproteinase (MMP) family which is involved in the breakdown of extracellular matrix in embryonic development, reproduction, and tissue remodeling, as well as in disease processes. The gene coding this family is localized on the chromosome 11 of Homo sapiens with 467 residues.[1]

Here is the initial structure of the catalytic domain of MMP-8.

MMP-8 catalytic domain

Drag the structure with the mouse to rotate

References